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Mechanistic modelling of fluidized bed drying processes of wet porous granules: a review.

机译:湿多孔颗粒流化床干燥过程的机械模型:综述。

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Fluidized bed dryers are frequently used in industrial applications and also in the pharmaceutical industry. The general incentives to develop mechanistic models for pharmaceutical processes are listed, and our vision on how this can particularly be done for fluidized bed drying processes of wet granules is given. This review provides a basis for future mechanistic model development for the drying process of wet granules in pharmaceutical processes. It is intended for a broad audience with a varying level of knowledge on pharmaceutical processes and mathematical modelling. Mathematical models are powerful tools to gain process insight and eventually develop well-controlled processes. The level of detail embedded in such a model depends on the goal of the model. Several models have therefore been proposed in the literature and are reviewed here. The drying behaviour of one single granule, a porous particle, can be described using the continuum approach, the pore network modelling method and the shrinkage of the diameter of the wet core approach. As several granules dry at a drying rate dependent on the gas temperature, gas velocity, porosity, etc., the moisture content of a batch of granules will reside in a certain interval. Population Balance Model (ling) (PBM) offers a tool to describe the distribution of particle properties which can be of interest for the application. PBM formulation and solution methods are therefore reviewed. In a fluidized bed, the granules show a fluidization pattern depending on the geometry of the gas inlet, the gas velocity, characteristics of the particles, the dryer design, etc. Computational Fluid Dynamics (CFD) allows to model this behaviour. Moreover, turbulence can be modelled using several approaches: Reynolds-averaged Navier-Stokes Equations (RANS) or Large Eddy Simulation (LES). Another important aspect of CFD is the choice between the Eulerian-Lagrangian and the Eulerian-Eulerian approach. Finally, the PBM and CFD frameworks can be integrated, to describe the evolution of the moisture content of granules during fluidized bed drying.
机译:流化床干燥机经常用于工业应用以及制药行业。列出了开发制药过程机械模型的一般诱因,并给出了我们对于如何将其特别用于湿颗粒流化床干燥过程的设想。该综述为制药工艺中湿颗粒干燥过程的未来机械模型开发提供了基础。它面向具有不同水平的制药过程和数学建模知识的广泛受众。数学模型是获得过程洞察力并最终开发受控过程的强大工具。嵌入到此类模型中的详细程度取决于模型的目标。因此,已经在文献中提出了几种模型,并在此进行了综述。可以使用连续介质方法,孔网络建模方法和湿芯方法直径的收缩来描述一个颗粒(多孔颗粒)的干燥行为。当几个颗粒以取决于气体温度,气体速度,孔隙率等的干燥速率干燥时,一批颗粒的水分含量将以一定的间隔停留。人口平衡模型(ling)(PBM)提供了一种工具来描述粒子属性的分布,这对于应用程序可能是有意义的。因此,回顾了PBM的配方和解决方法。在流化床中,根据进气口的几何形状,气体速度,颗粒的特性,干燥器设计等,颗粒会显示出流化模式。计算流体动力学(CFD)可以对这种行为进行建模。此外,可以使用几种方法对湍流进行建模:雷诺平均的Navier-Stokes方程(RANS)或大涡模拟(LES)。 CFD的另一个重要方面是在欧拉-拉格朗日方法和欧拉-欧拉方法之间进行选择。最后,可以整合PBM和CFD框架,以描述流化床干燥过程中颗粒水分含量的变化。

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